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Hybrid Fuel Cell Supercritical CO2 Brayton Cycle CO2 Storage

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Hybrid Fuel Cell Supercritical CO2 Brayton Cycle CO2 Storage ( hybrid-fuel-cell-supercritical-co2-brayton-cycle-co2-storage )

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Energies 2020, 13, 5043 19 of 20 27. Milcarek, R.J.; Garrett, M.J.; Baskaran, A.; Ahn, J. Combustion Characterization and Model Fuel Development for Micro-tubular Flame-assisted Fuel Cells. J. Vis. Exp. 2016, 116, e54638. [CrossRef] [PubMed] 28. Milcarek, R.J.; Nakamura, H.; Tezuka, T.; Maruta, K.; Ahn, J. Microcombustion for micro-tubular flame-assisted fuel cell power and heat cogeneration. J. Power Sources 2019, 413, 191–197. [CrossRef] 29. Ghotkar, R.; Milcarek, R.J. POWER2019-1852 Integration of Flame-assisted Fuel Cells with a Gas Turbine running Jet-A as fuel. In Proceedings of the ASME 2019 Power Conference collocated the ASME 2019 Nuclear Forum (POWER2019), Salt Lake City, UT, USA, 15–18 July 2019; pp. 1–9. 30. Milcarek, R.J.; Ahn, J. Micro-tubular flame-assisted fuel cells running methane, propane and butane: On soot, efficiency and power density. Energy 2019, 169, 776–782. [CrossRef] 31. Milcarek, R.J.; DeBiase, V.P.; Ahn, J. Investigation of startup, performance and cycling of a residential furnace integrated with micro-tubular flame-assisted fuel cells for micro-combined heat and power. Energy 2020, 196, 117148. [CrossRef] 32. Ghotkar, R.; Milcarek, R.J. Investigation of flame-assisted fuel cells integrated with an auxiliary power unit gas turbine. Energy 2020, 204, 117979. [CrossRef] 33. Olajire, A.A. A review of mineral carbonation technology in sequestration of CO2. J. Pet. Sci. Eng. 2013, 109, 364–392. [CrossRef] 34. Gunning, P.J.; Hills, C.D.; Carey, P.J. Accelerated carbonation treatment of industrial wastes. Waste Manag. 2010, 30, 1081–1090. [CrossRef] 35. Eloneva, S.; Teir, S.; Salminen, J.; Fogelholm, C.J.; Zevenhoven, R. Fixation of CO2 by carbonating calcium derived from blast furnace slag. Energy 2008, 33, 1461–1467. [CrossRef] 36. Cormos, C.C. Integrated assessment of IGCC power generation technology with carbon capture and storage (CCS). Energy 2012, 42, 434–445. [CrossRef] 37. Tola, V.; Pettinau, A. Power generation plants with carbon capture and storage: A techno-economic comparison between coal combustion and gasification technologies. Appl. Energy 2014, 113, 1461–1474. [CrossRef] 38. Ermanoski, I.; Stechel, E.B. Thermally-driven adsorption/desorption cycle for oxygen pumping in thermochemical fuel production. Sol. Energy 2020, 198, 578–585. [CrossRef] 39. Bray, J.M.; Schneider, W.F. Potential energy surfaces for oxygen adsorption, dissociation, and diffusion at the Pt(321) surface. Langmuir 2011, 27, 8177–8186. [CrossRef] 40. Rochau, G.E.; Pasch, J.J.; Cannon, G.; Carlson, M.; Fleming, D.; Kruizenga, A.; Sharpe, R.; Wilson, M. Supercritical CO2 Brayton Cycles. 2014. Available online: https://www.osti.gov/servlets/purl/1221819 (accessed on 23 September 2020). 41. Seo, Y.; Huh, C.; Lee, S.; Chang, D. Comparison of CO2 liquefaction pressures for ship-based carbon capture and storage (CCS) chain. Int. J. Greenh. Gas Control 2016, 52, 1–12. [CrossRef] 42. Milcarek, R.J.; Garrett, M.J.; Ahn, J. Micro-tubular flame-assisted fuel cells. J. Fluid Sci. Technol. 2017, 12, JFST0021. [CrossRef] 43. McBride, B.J.; Gordon, S.; McBride, B.J. Computer Program for Calculation of Complex Chemical Equilibrium Compositions and Applications. NASA Ref. Publ. 1311 1994, 184. Available online: https://web.stanford.edu/~{}cantwell/AA284A_Course_Material/AA284A_Resources/NASA_Glenn_Reports/ McBride%20and%20Gordon,%20Computer%20Program%20for%20Calculation%20of%20Complex%20Chemi cal%20Equilibrium%20NASA%20RP%201311%201996%20Part%20II.pdf (accessed on 23 September 2020). 44. Speight, J.G. Natural Gas; Elsevier: Amsterdam, The Netherlands, 2007; ISBN 9781933762142. 45. Milcarek, R.J.; Wang, K.; Garrett, M.J.; Ahn, J. Performance Investigation of Dual Layer Yttria-Stabilized Zirconia–Samaria-Doped Ceria Electrolyte for Intermediate Temperature Solid Oxide Fuel Cells. J. Electrochem. Energy Convers. Storage 2016, 13, 011002. [CrossRef] 46. Zeng, H.; Gong, S.; Shi, Y.; Wang, Y.; Cai, N. Micro-tubular solid oxide fuel cell stack operated with catalytically enhanced porous media fuel-rich combustor. Energy 2019, 179, 154–162. [CrossRef]

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